Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system
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Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system
Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system
中国化学工程学报(英文版)2025年85卷第9期 页码:228-237
Affiliations:
1. College of Chemistry and Chemical Engineering, Taiyuan University of Technology,Taiyuan,China,030024
2. Faculty of Science and Engineering, Hirosaki University, 3 Bunkyo-cho, Hirosaki,Aomori,Japan,036-8561
3. Section of Renewable Energy, Institute of Regional Innovation (IRI), Hirosaki University, 3 Bunkyo-cho, Hirosaki,Aomori,Japan,036-8561
Author bio:
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纸质出版:2025
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Kangjun Ji, Jingxuan Yang, Xuefeng Zhang, 等. Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system[J]. 中国化学工程学报(英文版), 2025,85(9):228-237.
Kangjun Ji, Jingxuan Yang, Xuefeng Zhang, Mengbo Zhao, Xiao Du, Xiaogang Hao, Abuliti Abudula, Guoqing Guan. Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system[J]. Chinese Journal of Chemical Engineering, 2025, 85(9): 228-237.
Kangjun Ji, Jingxuan Yang, Xuefeng Zhang, 等. Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system[J]. 中国化学工程学报(英文版), 2025,85(9):228-237.DOI:
Kangjun Ji, Jingxuan Yang, Xuefeng Zhang, Mengbo Zhao, Xiao Du, Xiaogang Hao, Abuliti Abudula, Guoqing Guan. Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system[J]. Chinese Journal of Chemical Engineering, 2025, 85(9): 228-237.DOI:
Enhanced fluid-flow-field and electric-field synergistic interaction mechanism for lithium-ion separation in dilute solutions: A numerical analysis of electrochemically switched ion exchange system
Electrochemically switched ion exchange (ESIX) is an effective technology for extracting high-value-added ions from dilute solutions. This study focuses on Li
+
extraction by employing a comprehensive model to analyze interaction between fluidic dynamics
electric field and ion transport. The model combines Butler-Volmer equation modified by electroactive site concentration
Nernst-Planck equation and Navier-Stokes equation. It is found that the chamber width affects solution phase resistance
thereby altering the potential distribution and influencing the current distribution within the membrane. A narrow chamber increases current density in the solid phase of the membrane
enhancing Li
+
extraction. The solution flow-field not only enhances convective transport but also increases the current density in the solid phase
promoting Li
+
extraction. There is a synergistic effect between fluid-flow-field and electric-field for ion separation
which is only significant when the chamber width is greater than 2 mm. The synergistic mechanism differs from that in the capacitive deionization system. Therefore
the performance decline caused by a wide chamber can be compensated for by increasing the fluid-flow rate
utilizing the synergistic effect between the fluid-flow-field and electric-field to optimize the lithium extraction efficiency in the ESIX system.
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